Products

LyondellBasell HDPE LP551-01 NARROW

    • Product Name: LyondellBasell HDPE LP551-01 NARROW
    • Factroy Site: Yudu County, Ganzhou, Jiangxi, China
    • Price Inquiry: admin@ascent-chem.com
    • Manufacturer: Ascent Petrochem Holdings Co., Limited
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    Specifications
    HS Code 223365
    Density 0.954 g/cm³
    Melt Flow Rate 190 C 2 16 Kg 0.35 g/10 min
    Tensile Strength At Yield 30 MPa
    Tensile Strength At Break 30 MPa
    Elongation At Break 600%
    Flexural Modulus 1.40 GPa
    Charpy Notched Impact Strength 23 C 5 kJ/m²
    Charpy Unnotched Impact Strength 23 C 100 kJ/m²
    Vicat Softening Temperature 127°C
    Heat Deflection Temperature 0 46 Mpa 75°C
    Shore D Hardness 65
    Environmental Stress Crack Resistance 1000 h
    Molecular Weight Distribution Narrow

    As an accredited LyondellBasell HDPE LP551-01 NARROW factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.

    Packing & Storage
    Packing LyondellBasell HDPE LP551-01 NARROW is supplied in 25 kg bags, with 55 bags per pallet (1,375 kg).
    Container Loading (20′ FCL) Container loading: 20′ FCL filled with LyondellBasell HDPE LP551-01 NARROW resin, securely palletized, sealed, and ready for ocean freight.
    Shipping LyondellBasell HDPE LP551-01 NARROW is a non-hazardous polyethylene resin shipped as pellets. Standard packaging includes 25 kg bags, 1,000 kg jumbo bags, or bulk trucks/railcars. Store dry, away from moisture, heat, and contamination. It is not regulated for transport under DOT, ADR, IMDG, or IATA.
    Storage Store LyondellBasell HDPE LP551-01 NARROW in a cool, dry, well-ventilated area away from direct sunlight, heat, sparks, and flames. Keep bags or containers sealed to prevent moisture, dust, and contamination. Use original packaging, stack securely on pallets, and avoid prolonged UV exposure. Maintain good housekeeping; no special temperature control is normally required.
    Shelf Life For LyondellBasell HDPE LP551-01 NARROW: indefinite shelf life when stored in original unopened packaging, dry, cool, away from sunlight and moisture.
    Application of LyondellBasell HDPE LP551-01 NARROW

    Across chilled mould surfaces held at 12 °C to 20 °C, LyondellBasell HDPE LP551-01 NARROW solidifies quickly enough to permit demoulding at wall thicknesses below 1 mm, but the same rapid solidification controls thin-wall dairy cup and deli container moulding more than any other variable. The grade’s narrow molecular weight distribution suppresses the viscosity tail that broad-MWD HDPE exhibits under high shear; in fast-fill applications where melt travels from a central hot sprue to the outer rim across a flow-length/part-thickness ratio exceeding 150:1, this suppression reduces flow-induced molecular orientation gradients and reduces ovality after ejection. Mould temperatures between 10 °C and 30 °C are retained on production machinery with turbulent water circuits through beryllium-copper cores; at the freeze-off gate, typically a round gate of 0.6 mm to 1.2 mm diameter, holding pressure is transferred through a 20:1 to 24:1 L/D general-purpose injection screw with a compression ratio of 2.0:1 to 2.5:1. The injection speed is set to fill 80 % to 95 % of the cavity before velocity-to-pressure switchover, with holding pressure maintained at 50 % to 70 % of peak injection pressure for 0.6 s to 1.8 s on thin lids; extended packing in thick bosses adjacent to rims produces sink marks because HDPE has a relatively high volumetric shrinkage. On equipment with clamp force capacities of 3,000 kN to 5,500 kN, cavities are filled at projected-area clamp loads of 3 kN/cm² to 5 kN/cm²; short-shot trials confirm that a drop of 10 °C in melt temperature at the nozzle extends the flow front less than the same drop in cavity wall temperature, which is why tool-temperature uniformity is monitored with infrared thermography at commissioning. Published data for spiral-flow performance at 800 bar injection pressure is limited for this specific grade; converter trials are still required to determine the flow-length/wall-thickness ratio for each runner layout. Direct food-contact articles produced from this grade are subject to FDA 21 CFR 177.1520(c) and Regulation (EU) No 10/2011 Annex I when placed on the European market; extraction testing under EU 10/2011 OM2 and OM4 conditions is completed on finished articles because compliance status is formulation-dependent as well as resin-dependent.

    A second process variable controls the same thin-wall food-container application: gate freeze-off. The grade is moulded at a melt temperature of 210 °C to 250 °C at the nozzle, with barrel zones profiled from hopper to nozzle so that the feed zone remains below 180 °C while the metering zone does not exceed 245 °C; screw speed is held between 80 rpm and 140 rpm to avoid excessive shear heating that would widen the effective molecular weight distribution. Back pressure is kept at 5 bar to 10 bar, and the decompression stroke after plasticating is limited to 2 mm to 4 mm so that air entrapment is reduced without creating gate drool. On thin lids with part mass below 10 g, the gate diameter is reduced to 0.5 mm to 0.9 mm; the gate freezes within 0.4 s to 1.0 s after switchover, and cycle time is then controlled by cooling time rather than injection time. The parts are commonly demoulded with stripper plates and robot end-of-arm tooling using vacuum cups placed outside the sealing surface; release force per cavity is held below 100 N to prevent lip deformation. Drop impact performance of the finished containers is evaluated with a 1.2 m drop height at 4 °C, using water-filled containers conditioned for 24 h; failures at the rim are traced to overpacked gate regions or excessive crystallinity from slow cooling, not to the selection of a narrow-MWD HDPE as such.

    What limits cycle time in high-cavitation closure moulds when differential shrinkage moves the tamper-evident band below the thread root?

    Closure sidewalls for non-carbonated beverages and dairy-based drinks are moulded with a melt temperature at the nozzle between 220 °C and 260 °C; the injection barrel zones are profiled with a flat-to-reverse temperature profile to limit overheating of the narrow-MWD melt. High-cavitation tools, commonly 32 to 96 cavities, use valve-gated hot runners with gate orifice diameters of 0.5 mm to 1.0 mm; valve pin actuation is sequenced within 25 ms to balance cavity filling. The narrow molecular weight distribution of LP551-01 NARROW reduces the normal stress distribution during fast flow through the gate, which is observed on production lines as lower gate blush and fewer crown defects on the outer closure surface. Differential shrinkage between the thick thread root and the thin tamper-evident bridge is the main dimensional failure mode; when the bridge thickness drops below 0.25 mm, mould-cooling imbalance greater than 5 °C across the cavity produces out-of-roundness greater than 0.15 mm on closures with a nominal diameter of 28 mm. Cycle times of 5 s to 9 s are achieved when cooling circuits are arranged with a Reynolds number above 10,000 in beryllium-copper inserts; removal robots with end-of-arm tooling apply a stripping force of less than 120 N per cavity to avoid cracking the tamper-evident band. Thread geometry is validated with profile projectors at 20× magnification, and torque retention is measured on a motorized torque tester with a resolution of 0.01 N·m. Food-contact closures are assessed under the same extraction regimes as the containers themselves, and colour concentrates must be selected from positive lists in Regulation (EU) No 10/2011 Annex I if a filled product contains free fats or alcohol.

    In closure applications the melt is not intentionally packed as heavily as in thick industrial parts because excessive packing increases the shrinkage differential between the thread root and the bridge. The holding pressure is therefore reduced to 35 % to 50 % of peak injection pressure, and the holding time is limited to 0.5 s to 1.2 s. On a 64-cavity tool running at a cycle time of 6.5 s, cavity-to-cavity weight variation is controlled within ±0.15 % by means of hot-runner pressure sensors; this is a stricter repeatability requirement than for generic containers because closure threads must mate with bottle finishes without leakage. The grade is also used in snap-fit closures where the tamper-evident band is formed by a hinged overcap rather than a cut bridge; there the hinge web thickness is held at 0.30 mm to 0.45 mm and flexed 20 times during in-line validation to ensure that the web does not whiten. Torque-loss testing is performed after 24 h conditioning at 23 °C and 50 % relative humidity; the acceptance criterion is a torque retention above 0.8 N·m for a 28 mm finish, but the converter sets the exact value against the bottle finish specification. Published data for carbonate retention in this specific HDPE grade is limited because soft-drink closures are usually moulded in polypropylene; LP551-01 NARROW is placed instead in non-carbonated water, juice, and dairy closures where oxygen transmission and carbonation retention are not the controlling performance parameters.

    Straight-Wall Pails, Freezer-Grade Drop Performance, and UN Transport Packaging

    Industrial pails between 5 L and 25 L are moulded with wall thicknesses from 1.2 mm to 2.5 mm, but the critical section is the sidewall-to-base radius, where knit lines from multiple gates converge. For LP551-01 NARROW, the narrow MWD reduces the viscosity irregularity that broad-MWD HDPE shows at the junction of two flow fronts; however, the same grade will not reach full impact resistance if the mould temperature at the radius is below 8 °C or if the hot-runner manifold temperature exceeds 250 °C for more than 10 min residence time. Production-scale trials with a 4,500 kN clamping unit and a 22:1 L/D screw show that filling speed must be reduced by 20 % to 30 % when the flow front passes through the handle hinge because the melt divides and recombines; if the recombination point is not packed, the handle boss shows stress whitening at load levels below 15 kg. Stacking strength is measured by loading filled, lidded pails at 23 °C and 40 °C for 72 h with a top-load deflection limit of 2 mm. Freezer-grade service at −18 °C requires notched impact performance typical of HDPE homopolymer; the parts are conditioned for 24 h before drop testing at 1.2 m per the performance requirements of UN packing group II, with the pail filled with water and ethylene glycol to simulate a non-hazardous liquid with a density of 1.0 g/cm³. Environmental stress-cracking resistance is assessed under ASTM D1693 Condition B in 10 % Igepal CO-630 at 50 °C; for this grade, the main operational boundary is prolonged contact with aromatic hydrocarbons, which is outside the intended olefin handling envelope. Compliance for dangerous goods packaging depends on the moulded pail meeting drop, leakproofness, and stacking tests under ADR/RID or IMDG provisions; the resin itself is not certified, only the finished article.

    Gate position in straight-wall pails determines the failure mode more than the melt-flow rate alone. A centre-gated base filling upward through the sidewall produces a radial orientation that increases hoop strength but leaves a weak point at the base-to-wall junction; a multi-gated rim-filling process moves the weld line into the upper band, where handle loads are applied. The latter layout is preferred for pails that will be lifted by a bale handle, but it requires higher melt pressure to fill from the rim downward through the wall. With LP551-01 NARROW, a filling pressure of 850 bar to 1,100 bar is typical for a 20 L pail with a wall thickness of 1.8 mm and a flow path of 350 mm. The cooling time for such a part is between 15 s and 25 s; ejection at too high a surface temperature, above 70 °C, causes the bottom to flex and later fail in stacking. Sidewall thickness variation is measured with an ultrasonic gauge in eight positions around the circumference, and the tolerance is held to ±0.10 mm; variation outside that band tends to concentrate top load into the thinnest quadrant. Because the grade is a homopolymer HDPE, it does not carry the highest ESCR values available from hexene-copolymer HDPE; therefore pails for aggressive surfactant solutions require either a liner or a different resin grade. Published data for long-term creep of this specific grade in stacked pail service is limited; converter qualification therefore includes a 14-day top-load creep test at 40 °C rather than relying on short-term modulus data alone.

    Application segmentNormative referenceCritical test or parameterTypical acceptance window
    Thin-wall dairy/deli containersFDA 21 CFR 177.1520(c); EU 10/2011 Annex IOverall migration, OM2/OM4≤ 10 mg/dm²; ≤ 60 mg/kg for infant foods
    Non-carbonated closuresEU 10/2011 Annex I; ASTM D638-14Thread-root tensile yield; migration≥ 20 MPa; OM ≤ 10 mg/dm²
    UN pailsADR 6.1.5.3; ASTM D1693Drop, stacking, ESCR Condition BNo leakage; F50 > 100 h
    Fruit cratesRoHS Directive 2011/65/EU; ASTM D790-17Flexural modulus; creep deflectionNo restricted substance; ≤ 5 mm at 2,000 N for 168 h
    Sharps containersISO 23907-1:2019Puncture resistanceNo penetration at 200 N, 100 mm/min

    When ventilated fruit crates are moulded with long ribbed flow paths and low packing pressure

    Returnable fruit and vegetable crates, bakery trays, and logistics totes require top-load and side-load stiffness without the weight penalty of solid walls. LP551-01 NARROW is processed with a melt cushion controlled at 3 mm to 6 mm and a screw back pressure of 5 bar to 10 bar; lower back pressure than broad-MWD HDPE is used because the narrow distribution already limits the residence-time-dependent viscosity shift. Fill analysis on a crate with wall sections of 1.5 mm and ribs of 2.5 mm depth shows that the melt reaches the end of a 450 mm flow path at an available injection pressure of 900 bar with a pressure drop of 55 bar/cm along the flow front. The packing phase is deliberately shortened to 1.5 s to 2.5 s because overpacking the rib roots produces sink marks on the opposite face and increases ejection pin marks in polyolefins. Weld lines at the centre of the crate base, where flow from two injection points meets, are a known brittle zone in large-area parts; mould trials with a 2,800 kN machine and a 3 mm cold runner system show that weld-line tensile strength measured with ISO 527-2 specimens cut across the weld line retains approximately 60 % to 75 % of the base resin yield stress when the mould temperature is at least 17 °C. Below that mould temperature, the retention drops below 50 %, which is an operational boundary for ventilated crates meant for automated depalletising. Flexural modulus values of the moulded crate sidewall are verified using ASTM D790-17 with a test speed of 13 mm/min; because HDPE modulus is rate-dependent, the same crate skin shows a higher apparent modulus at faster unloading rates. Long-term creep under stacked loads is tested with a top load of 2,000 N at 23 °C for 168 h, and creep deflection is limited to 5 mm for returnable transit packaging. The grade contains no intentionally added heavy metals, enabling compliance with EU RoHS Directive 2011/65/EU as amended by (EU) 2015/863 for logistics articles placed on the market.

    The filling pattern in these open-void crate geometries does not follow the simple centre-gated radial flow used in thin-wall containers. Molten LP551-01 NARROW first fills the base grid, then the sidewall ribs, and finally the top lip; the melt front splits and recombines at every rib intersection. A narrow molecular weight distribution reduces the extent to which the recombined front forms a visible weld line on the textured sidewall surface, but it cannot eliminate the weld line entirely. Mould trials show that when the rib-to-wall thickness ratio exceeds 1.8:1, the base grid becomes flow-marked because the melt cools in the thin diaphragm and is then forced into the thick rib. For this reason, rib thickness is maintained at 1.2 to 1.5 times the wall thickness, not higher. Injection speed is profiled with a brief fast-fill stage in the first 0.3 s to cross the base diaphragm, followed by a reduced fill rate of 40 % to 60 % to prevent hydraulic pressure spikes at the top lip. A clamp force margin of 15 % above the predicted cavity pressure is maintained because flashing at the lip is a faster production failure than a short shot in the sidewall. Parts are ejected with air-assisted strippers and multiple-stage ejector pins; ejection speed is limited to 60 mm/s to avoid punching through warm ribs. In returnable service, the crates are steam-cleaned at 60 °C to 80 °C; HDPE withstands this temperature range, but repeated steam exposure without cooling can gradually relax the top rib if stacking starts before the part surface drops below 45 °C.

    Within utility tubs and stackable household storage articles, wall-thickness variation between the sidewall and the snap-fit lid bead controls the demoulding force. LP551-01 NARROW is run on machines with clamp force capacities between 1,200 kN and 3,000 kN, with injection speeds profiled over 10 ms intervals to prevent jetting in deep drawer cavities. The mould temperature is intentionally asymmetric: the core is held at 12 °C to 18 °C while the cavity is held at 18 °C to 25 °C so that the part shrinks onto the core and releases from the cavity without sticking. In stackable storage units, the fit clearance between nested sidewalls is specified at 0.15 mm to 0.30 mm per side; a larger clearance causes rotational instability in a stack of eight filled containers, while a smaller clearance causes sticking when containers are denested at room temperature. Hinges for utility baskets are a direct test of the narrow-MWD resin; the hinge is gated at one end and the melt fills a 50 mm by 0.35 mm hinge web. If the filling phase stops before the hinge is fully packed, the resulting short-shot hinge shows immediate cracking on flexing; if the hinge is overpacked, residual stress whitens after 100 flex cycles. Mould operators measure the hinge thickness with a micrometer to a tolerance of ±0.03 mm before accepting a cavity. ESCR of the finished household article is evaluated by exposing stress-moulded lids to a warm soap solution at 60 °C for 72 h; the narrow MWD does not exempt the part from surface-active-agent attack, but it reduces the number of uncontrolled low-molecular-weight fractions that usually initiate surface crazing. Articles intended for prolonged contact with hot food above 80 °C are outside the recommended service envelope because HDPE softens and the loaded sidewall can deform.

    In multi-cavity houseware moulds, the main production-line failure is unbalanced runner delivery. Because LP551-01 NARROW flows readily when the melt is shear-thinned, a runner system designed for a lower-flow HDPE often overfills the first cavities and starves the last cavities. Converter trials therefore use runner balancing software and pressure transducers at the end of the runner to verify that cavity pressure at switchover does not differ by more than 20 bar between the first and last cavity. Cold runner diameters for a 4-cavity tool are typically 4 mm to 6 mm full round; insufficient runner diameter causes the melt to freeze before the gate and creates gas traps in the sidewall. Hot-runner systems for utility tubs use valve gates and are set with a manifold temperature 10 °C to 15 °C below the nozzle temperature to prevent drool. Cycle times on thin utility tubs are between 8 s and 15 s depending on wall thickness; the narrow MWD allows a slightly lower melt temperature than broad-MWD HDPE at the same MFR because the flow front is more uniform. Surface gloss and scratch resistance are evaluated by a scratch test using a 1 mm stylus at 10 N; although HDPE has inherently low scratch resistance compared with engineering resins, surface texture reduces the visible effect. The moulding operation is not the last process step; secondary operations include tamper-evident label application and in-line leak testing of lids, and these stations require that no mould-release lubricants be used. FDA-compliant processing aids and purging compounds are therefore mandatory when the articles pass through the same line as food-contact containers.

    Under puncture load: sharps container wall sections and closure integrity in clinical waste service

    Sharps containers are injection-moulded in base and lid pairs with nominal wall thicknesses of 1.6 mm to 2.5 mm, but the puncture-critical sections are the flat panels between stiffening ribs. The LP551-01 NARROW narrow molecular weight distribution contributes to consistent crystalline orientation across large flat surfaces because the melt freezes more uniformly after fast filling; however, puncture resistance in HDPE is governed more by section thickness and rib placement than by MFR alone. Containers intended for single-use sharps disposal are tested to ISO 23907-1:2019 requirements where a puncture probe is applied to the sidewall at 200 N with a loading rate of 100 mm/min; the typical acceptance outcome is no penetration through the inner surface. Production-scale injection moulding of a 2.2 L container uses a valve-gated hot runner with sequential opening to place the weld line away from the flat base panels; the weld line is moved to the corner ribs because puncture loads are distributed into the ribs. The closure system, often a snap-on lid with a temporary and permanent closure port, must retain its engagement after the container is dropped from 1 m in a horizontal orientation; this requires a lid-to-base interference of 0.25 mm to 0.45 mm on the perimeter. Autoclaving of empty containers is not recommended for this grade at temperatures above 121 °C because dimensional distortion occurs; instead, incineration is the usual disposal route, and the resin burns with a high heating value typical of polyethylene without halogen-containing flame retardants. Laboratory practice involves occasional contact with sodium hypochlorite solution at 0.5 % to 2 % concentration for surface disinfection; this exposure is governed by chemical compatibility with HDPE, not by a specific resin certification. No intentionally added substances of very high concern are used in the base resin, and the grade can be specified against REACH Annex XVII restrictions for cadmium, lead, and phthalates, but the final medical waste container must be validated by the converter under the relevant national clinical waste regulations.

    The dimensional consistency of the lid perimeter is the process variable most often linked to field failures in sharps containers. When the lid is moulded in the same shot as the base, differential shrinkage between the thick latch bosses and the thin lid membrane causes the lid to bow. This bowing is controlled by adding narrow hinge lines that decouple the latch bosses from the central membrane; in LP551-01 NARROW mouldings, those hinge lines remain ductile after repeated closure because the narrow-MWD molecular structure produces fewer coarse spherulites along the oriented skin. The lid is filled through a ring gate at the periphery to orient the melt circumferentially; radial fill from a central gate produces a less uniform strength pattern. The base is filled through two side gates rather than a single centre gate, with the two flow fronts meeting at a vertical rib that runs through the bottom panel; this converts the weld line into a structural feature rather than a hidden brittle line. In-line testing at the press includes a pneumatic leak test at 10 kPa and a lid-assembly force test in which the lid must engage at a force between 60 N and 160 N. Cycle time for a 2.2 L base is typically 18 s to 25 s; faster cycles produce surface sink at the latch bosses and require an extended holding phase that defeats the cycle-time gain. The grade is not intended for sharps containers that will be autoclaved repeatedly or heat-sterilized above 121 °C; for those service conditions, converters would need to evaluate a higher-heat or autoclavable polyolefin system.

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    Certification & Compliance
    More Introduction

    LyondellBasell HDPE LP551-01 NARROW is a high-density polyethylene resin supplied with a bounded molar mass distribution and intended primarily for injection-moulded rigid packaging, thin-wall closures, overcaps, and consumer articles. The term NARROW in the product designation refers to the deliberately constrained high-molar-mass tail rather than to a dimensional tolerance or application range. Lot-specific compliance is controlled by the supplier’s certificate of analysis, with classification under ISO 1043-1 as PE-HD. Density is normally evaluated according to ISO 1183-1 or ASTM D792, and melt mass-flow rate according to ISO 1133-1 at 190 °C with 2.16 kg piston load. Mechanical properties are commonly assessed using ISO 527-2 for tensile yield stress and elongation, ISO 178 for flexural modulus, and ISO 179-1/1eA for notched Charpy impact at 23 °C. Typical orientation values for a narrow-MWD high-density polyethylene of this density and melt-flow class are shown in Table 1; the supplier’s release limits should be consulted for minimum and maximum acceptance criteria.

    Typical orientation properties for LyondellBasell HDPE LP551-01 NARROW class
    PropertyTypical valueTest method
    Density0.955 g/cm³ISO 1183-1, ASTM D792
    Melt mass-flow rate20 g/10 minISO 1133-1, ASTM D1238
    Tensile yield stress26 MPaISO 527-2, ASTM D638
    Tensile strain at yield8%ISO 527-2, ASTM D638
    Flexural modulus1,100 MPaISO 178, ASTM D790
    Notched Charpy impact at 23 °C3.0 kJ/m²ISO 179-1/1eA
    Vicat softening point, A120126 °CISO 306/A120

    The material is supplied in pellet form and does not normally require pre-drying when stored below 60% relative humidity. If condensation is observed on pellet surfaces, a dehumidifying hopper dryer set at 80 °C for 2 h is typically sufficient to return moisture content below 0.05%. Storage should avoid direct ultraviolet exposure because unstabilized polyethylene undergoes chain scission and loss of impact strength under prolonged sunlight. The stabilizer package of LP551-01 NARROW should be verified on the safety data sheet if the converted article is intended for outdoor service or long-wavelength ultraviolet contact.

    What Processing Consequences Follow from Narrow Molar Mass Distribution?

    The narrow distribution reduces melt elasticity, die swell, and relaxation time after gate solidification. This is measurable as a shift in the storage modulus-loss modulus crossover to higher frequency and a flatter shear viscosity curve from 100 s⁻¹ to 1,000 s⁻¹ when compared with broad-MWD chromium-catalysed high-density polyethylene of similar melt mass-flow rate. In capillary rheometry under ISO 11443 at 190 °C, the die swell of LP551-01 NARROW is lower than that of a broad-MWD grade of equivalent melt index. The lower elastic memory is advantageous for dimensional repeatability in multi-cavity closure moulds, but it also produces lower melt strength. The resin is therefore not recommended for large extrusion blow moulding, deep-draw sheet extrusion, or foam processes where sag resistance under melt extensional flow is required.

    The same narrow distribution shortens the solidification transition and reduces frozen-in orientation. This lowers warpage in flat plaques and sealing surfaces, but it imposes tighter control of melt cushion, decompression, and holding pressure. On a reciprocating screw injection machine with a 20:1 to 24:1 L/D screw, compression ratio from 2.5:1 to 3.0:1, and hydraulic back pressure from 5 bar to 15 bar, melt temperatures between 200 °C and 230 °C are common. Melt temperatures above 240 °C can initiate oxidative degradation during extended residence times, while temperatures below 190 °C may cause short shots and gate-hesitation defects at wall thicknesses below 0.6 mm. Residence time in the barrel should not exceed 10 min; for longer interruptions, the barrel should be purged with a general-purpose polyethylene of lower melt temperature.

    Comparative processing profile of LP551-01 NARROW and broad-MWD HDPE of equivalent melt mass-flow rate
    Processing parameterLP551-01 NARROWBroad-MWD HDPE equivalent MFRReference test
    Extrudate swell at apparent shear rate 1,000 s⁻¹LowerHigherISO 11443 capillary rheometry
    Melt strengthLowerHigherRheotens melt extension, 190 °C
    Mould shrinkage after 24 hLowerHigherISO 294-4
    Warpage tendency in thin flat plaquesLowerHigherISO 294-4, optical comparator
    Environmental stress crack resistanceLowerHigherASTM D1693, bent strip

    At the hopper throat of a production-scale injection moulder, the feed throat temperature is maintained below 50 °C to prevent pellet bridging and irregular screw packing. Barrel profiles are commonly set with the feed zone at 60 °C to 80 °C, compression zone at 180 °C, metering zone at 200 °C, and nozzle at 210 °C. Mould temperatures from 10 °C to 20 °C are used for fast cycle intervals, but complex sealing geometries may require mould temperatures up to 40 °C to reduce weld-line weakness. Observed failure modes on multi-cavity tools include gate blush when injection velocity is excessive, sink marks when holding pressure falls below 60% of peak injection pressure, and dimensional drift when cooling channels are unbalanced. With hot-runner systems, insufficient decompression can produce stringing at the nozzle because the narrow-MWD melt has low elastic recovery; excessive decompression can aspirate air and create splay on the cavity surface.

    The material is suited to high-speed injection moulding of thin-wall caps and closures where wall thickness is below 1.2 mm and part mass is below 10 g. Fill time in such cavities is often controlled between 0.5 s and 1.5 s. Holding pressure is generally held for 3 s to 8 s to compensate solidification shrinkage. Because narrow-MWD high-density polyethylene has a short gate freeze time, the gate diameter should be optimized by mould-flow simulation rather than transferred directly from a broad-MWD grade. Published data for this specific configuration is limited; process capability should be established on the target mould with a design of experiments covering barrel temperature, injection velocity, holding pressure, and cooling time.

    When Injection Moulding of Rigid Closures Replaces Compression Moulding

    When a converter replaces compression-moulded closures with injection-moulded LP551-01 NARROW closures, the primary advantages are faster cycle capability, lower part-to-part mass variation, and improved gate-to-gate fill balance in high-cavitation tools. The material is used in beverage closures, food caps, overcaps, thin-wall containers, housewares, and appliance components where stiffness, low warpage, and high flow are required. Compared with a broad-MWD high-density polyethylene of similar melt mass-flow rate, LP551-01 NARROW gives lower extrudate swell and lower post-ejection warpage but also lower environmental stress crack resistance. For aggressive fatty or detergent-containing products, the suitability of the grade should be confirmed by stress crack testing under ASTM D1693 or equivalent bottle cap torque-retention and crack-propagation tests.

    In closure sealing applications, dimensional tolerance on the sealing land is often held within ±0.05 mm. The reduced frozen-in orientation of LP551-01 NARROW helps maintain the circularity of a closure skirt after ejection. However, mould cooling must be uniform across the circumference because differential shrinkage can still produce ovality. A colour masterbatch letdown of 1% to 3% is commonly used; the masterbatch carrier and lubricant package must be evaluated for its effect on removal torque and sealing performance. Higher lubricant levels can reduce removal torque below minimum openability limits, while pigment agglomerates can block vent channels and produce burn marks during high-speed filling. Processors should use a split-shot or short-shot study to verify vent location and cavity displacement before production start-up.

    Compared with polypropylene impact copolymers used in closures, LP551-01 NARROW typically provides lower density and lower article weight at equivalent wall thickness, but it may have lower upper service temperature and lower stiffness retention at elevated temperature. The choice between high-density polyethylene and polypropylene therefore depends on the package hot-fill requirement, closure seal geometry, and torque-loss specification. Compared with general-purpose injection-moulding HDPE grades of similar melt index but broader molecular weight distribution, LP551-01 NARROW is differentiated mainly by reduced warpage, lower melt elasticity, and shorter relaxation time, not by a major difference in density or flexural modulus.

    Regulatory compliance for LP551-01 NARROW is application-specific. Food-contact evaluations may be performed under 21 CFR 177.1520 or relevant regional food-contact legislation, but the supplier’s regulatory letter and the specific additive package must confirm the intended food types and use conditions. The grade is not automatically compliant with drinking-water contact standards, medical device requirements, or pharmaceutical packaging unless explicitly stated in a product stewardship document. REACH and RoHS declarations are supplied through the safety data sheet and compliance certificate. The material should not be combined with amine-based additives that can destabilize certain oxidative packages, and it should be kept away from strong oxidizing acids, aromatic hydrocarbons, and chlorinated solvents at temperatures above 50 °C. For outdoor articles, an ultraviolet stabilizer package must be specified because natural narrow-MWD high-density polyethylene without sufficient stabilization undergoes surface embrittlement and gloss loss under extended sunlight exposure.

    Environmental stress crack resistance is lower than that of broad-MWD or bimodal high-density polyethylene of similar density. In applications where the closure is exposed to cyclic mechanical stress and aggressive chemical environments, the bent-strip time to failure under ASTM D1693 should be evaluated against the package shelf-life requirement. If the required time to failure is longer than the grade’s measured response, a medium-MWD or bimodal HDPE should be selected. The narrow distribution that improves warpage and dimensional stability therefore defines the boundary of acceptable use; LP551-01 NARROW is a fast-cycling, dimensionally stable injection-moulding resin, not a replacement for high-stress-crack-resistance blow-moulding grades or high-sag-resistance sheet extrusion grades.

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